研究目的
To develop and validate a novel theranostic nanoparticle consisting of FA conjugated to Gd-PMOFs for image-guided treatment of HCC.
研究成果
FA-NPMOFs can be used for dual-modality imaging and photodynamic therapy in HCC, showing promise as a carrier for new therapies targeting FR-positive tumors. The nanoparticles exhibit low biotoxicity, good water solubility, and specific targeting capabilities.
研究不足
The study primarily focuses on in vitro and zebrafish models, which may not fully replicate human HCC conditions. Further research is needed to assess the efficacy and safety in mammalian models and humans.
1:Experimental Design and Method Selection:
Synthesis of FA-NPMOFs using gadolinium-porphyrin metal-organic frameworks as a skeleton for folic acid conjugation. Characterization using TEM, FTIR, and TG-DTA.
2:Sample Selection and Data Sources:
Use of HepG2 cells and embryonic and larval zebrafish for biotoxicity and imaging capability assessment.
3:List of Experimental Equipment and Materials:
Transmission electron microscopy (TEM, JEM100CXII, JEOL Japan Electronics Co., Ltd.), Fourier transform infrared spectrometer (Tensor 27, Bruker), thermogravimetric-differential thermal analyzer (PTC-10ATG-DTA, Thermo plus EVO2 TG8121, Rigaku Co., Ltd.), UV-Vis spectrophotometer (U-3900, Hitachi), fluorescence spectrometer (FL-4600, Hitachi).
4:Experimental Procedures and Operational Workflow:
Synthesis of FA-NPMOFs, characterization, in vitro cytotoxicity assay, in vitro biologic imaging, aqueous exposure and fluorescence imaging of zebrafish embryos and larvae, MRI, induction of HCC in krasG12V zebrafish, treatment of HCC-bearing zebrafish with FA-NPMOFs and PDT, small animal imaging, histology and immunohistochemistry.
5:Data Analysis Methods:
Statistical analysis using GraphPad Prism software, ImageJ software for image processing.
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Transmission Electron Microscopy
JEM100CXII
JEOL Japan Electronics Co., Ltd.
Characterization of the morphology of FA-NPMOFs.
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Fourier Transform Infrared Spectrometer
Tensor 27
Bruker
Characterization of the functionalization of FA-NPMOFs.
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UV-Vis Spectrophotometer
U-3900
Hitachi
Determination of the optical properties of FA-NPMOFs.
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Fluorescence Spectrometer
FL-4600
Hitachi
Steady-state fluorescence measurements of FA-NPMOFs.
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Confocal Microscope
FV 1000
Olympus Corporation
Capture of confocal fluorescence images of FA-NPMOFs in cells.
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Stereomicroscope
SZX16
Olympus Corporation
Capture of fluorescence images of zebrafish embryos.
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Fluorescence Microscope
BX51
Olympus Corporation
Observation of tissue distribution of FA-NPMOFs in zebrafish larvae.
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Small Animal In Vivo Imaging System
NightOWL LB 983
Berthold Technologies
Thermal imaging of HCC-bearing zebrafish.
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Thermogravimetric-Differential Thermal Analyzer
PTC-10ATG-DTA
Thermo plus EVO2 TG8121, Rigaku Co., Ltd.
Thermogravimetric-differential thermal analysis of FA-NPMOFs.
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Microplate Reader
Promega
Measurement of absorbance at a wavelength of 560 nm for MTT assay.
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MRI System
Huantong Corporation
Capture of T1-weighted images of FA-NPMOF-exposed zebrafish embryos.
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